Proposal 3E analysis and multi-objective optimization of a new biomass-based energy system based on the organic cycle and ejector for the generation of sustainable power, heat, and cold

It has long been proven that biomass energy may be used to convert chemical energy into electricity, heating, and cooling on a sustainable basis. It emits less pollution, has a greater heat source temperature, and is compatible with various energy systems. The chemical energy contained in biomass is...

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Published in:Sustainable Energy Technologies and Assessments
Main Author: Hai T.; Dhahad H.A.; ATTIA E.-A.; Fareed Ibrahim B.; Mohamed A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.
Format: Article
Language:English
Published: Elsevier Ltd 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85135695923&doi=10.1016%2fj.seta.2022.102551&partnerID=40&md5=bbc15dbd9edecc71d0f4304b3bed3369
id 2-s2.0-85135695923
spelling 2-s2.0-85135695923
Hai T.; Dhahad H.A.; ATTIA E.-A.; Fareed Ibrahim B.; Mohamed A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.
Proposal 3E analysis and multi-objective optimization of a new biomass-based energy system based on the organic cycle and ejector for the generation of sustainable power, heat, and cold
2022
Sustainable Energy Technologies and Assessments
53

10.1016/j.seta.2022.102551
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85135695923&doi=10.1016%2fj.seta.2022.102551&partnerID=40&md5=bbc15dbd9edecc71d0f4304b3bed3369
It has long been proven that biomass energy may be used to convert chemical energy into electricity, heating, and cooling on a sustainable basis. It emits less pollution, has a greater heat source temperature, and is compatible with various energy systems. The chemical energy contained in biomass is exploited to create heating, cooling, and electricity in this research using efficient ejector-based-organic cycles. The system comprises three distinct subsystems; the gasification process, an externally fueled gas turbine that serves as the system's primary mover and upper cycle, and an organic flash cycle with an ejector. The exit hot gases are then utilized to heat a steam Rankine cycle, the condenser of which is the ejector-based-organic cycle's evaporator. ANN and TOPSIS techniques are used to undertake the 3E analysis, parametric research, and multi-criteria optimization. The findings reveal that biomass characteristics have a measurable impact on system performance. Additionally, the optimization findings indicated that at the optimal point, the energy efficiency, cost rate, CO2 emission, and net power production are 24.07 %, 142.54 $/hr, 0.53 kg/kWh, and 10281 kW, respectively. © 2022 Elsevier Ltd
Elsevier Ltd
22131388
English
Article

author Hai T.; Dhahad H.A.; ATTIA E.-A.; Fareed Ibrahim B.; Mohamed A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.
spellingShingle Hai T.; Dhahad H.A.; ATTIA E.-A.; Fareed Ibrahim B.; Mohamed A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.
Proposal 3E analysis and multi-objective optimization of a new biomass-based energy system based on the organic cycle and ejector for the generation of sustainable power, heat, and cold
author_facet Hai T.; Dhahad H.A.; ATTIA E.-A.; Fareed Ibrahim B.; Mohamed A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.
author_sort Hai T.; Dhahad H.A.; ATTIA E.-A.; Fareed Ibrahim B.; Mohamed A.; Fahad Almojil S.; Ibrahim Almohana A.; Fahmi Alali A.; Farhang B.
title Proposal 3E analysis and multi-objective optimization of a new biomass-based energy system based on the organic cycle and ejector for the generation of sustainable power, heat, and cold
title_short Proposal 3E analysis and multi-objective optimization of a new biomass-based energy system based on the organic cycle and ejector for the generation of sustainable power, heat, and cold
title_full Proposal 3E analysis and multi-objective optimization of a new biomass-based energy system based on the organic cycle and ejector for the generation of sustainable power, heat, and cold
title_fullStr Proposal 3E analysis and multi-objective optimization of a new biomass-based energy system based on the organic cycle and ejector for the generation of sustainable power, heat, and cold
title_full_unstemmed Proposal 3E analysis and multi-objective optimization of a new biomass-based energy system based on the organic cycle and ejector for the generation of sustainable power, heat, and cold
title_sort Proposal 3E analysis and multi-objective optimization of a new biomass-based energy system based on the organic cycle and ejector for the generation of sustainable power, heat, and cold
publishDate 2022
container_title Sustainable Energy Technologies and Assessments
container_volume 53
container_issue
doi_str_mv 10.1016/j.seta.2022.102551
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85135695923&doi=10.1016%2fj.seta.2022.102551&partnerID=40&md5=bbc15dbd9edecc71d0f4304b3bed3369
description It has long been proven that biomass energy may be used to convert chemical energy into electricity, heating, and cooling on a sustainable basis. It emits less pollution, has a greater heat source temperature, and is compatible with various energy systems. The chemical energy contained in biomass is exploited to create heating, cooling, and electricity in this research using efficient ejector-based-organic cycles. The system comprises three distinct subsystems; the gasification process, an externally fueled gas turbine that serves as the system's primary mover and upper cycle, and an organic flash cycle with an ejector. The exit hot gases are then utilized to heat a steam Rankine cycle, the condenser of which is the ejector-based-organic cycle's evaporator. ANN and TOPSIS techniques are used to undertake the 3E analysis, parametric research, and multi-criteria optimization. The findings reveal that biomass characteristics have a measurable impact on system performance. Additionally, the optimization findings indicated that at the optimal point, the energy efficiency, cost rate, CO2 emission, and net power production are 24.07 %, 142.54 $/hr, 0.53 kg/kWh, and 10281 kW, respectively. © 2022 Elsevier Ltd
publisher Elsevier Ltd
issn 22131388
language English
format Article
accesstype
record_format scopus
collection Scopus
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